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3D edge detection by separable recursive filtering and edge closing

机译:通过可分离的递归滤波和边缘闭合进行3D边缘检测

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Edge detection in 3D images such as scanner, magnetic resonance, or spatiotemporal data is considered. A two-stage scheme based on separable recursive filtering and edge tracking/closing is proposed. The key point of the filtering stage is to use optimal recursive and separable filters to approximate gradient or Laplacian methods. The recursive nature of the operators enables one to implement infinite 3D impulse response with a computing time roughly similar to a 3*3*3 convolution mask. The principle of the edge tracking/closing is to select from the previous stage only the more reliable edge points and then to apply an edge closing method derived from the idea developed by R. Deriche and J.P. Cocquerez (1988). This makes it possible to substantially improve the results provided by the filtering stage.
机译:考虑在3D图像(例如扫描仪,磁共振或时空数据)中进行边缘检测。提出了一种基于可分离递归滤波和边缘跟踪/闭合的两阶段方案。过滤阶段的关键是使用最佳的递归和可分离的过滤器来近似梯度或拉普拉斯方法。运算符的递归性质使人们可以用与3 * 3 * 3卷积掩码大致相似的计算时间来实现无限的3D脉冲响应。边缘跟踪/闭合的原理是从上一阶段中仅选择更可靠的边缘点,然后应用从R. Deriche和J.P. Cocquerez(1988)提出的思想中得出的边缘闭合方法。这使得可以大大改善过滤级提供的结果。

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